A surge irrigation system with one or more valve location units configured for location at a flood irrigation valve assembly. Each valve location unit has an elongate linkage with a rod configured to rotatably open and close a flood irrigation valve assembly with a powered actuator. A control unit is connected to the powered actuator and configured to wirelessly receive instructions to operate the powered actuator. Various embodiments also implement a base station to relay information and/or instructions between valve location units and a user. A user may control the system through, for example, a mobile device interface. Embodiments of the invention may also include moisture sensors configured to provide feedback to the system. A method of using the surge irrigation system is also disclosed.
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1. A surge irrigation system comprising:
a valve location unit with
a linkage configured to open and close a valve assembly;
a powered actuator connected to the linkage;
a control unit connected to the powered actuator, the control unit configured to wirelessly receive instructions to operate the powered actuator;
one or more computers with a processor and memory with one or more modules to operate the control unit, wherein the one or more modules to operate the control unit comprise:
a power management module for managing power in the surge irrigation system;
an instruction and data module for receiving instructions and sending data; and
an operation module for operating the surge irrigation system within predetermined modes, including timing and duration of surge irrigation within one or more delineated areas of land; and
the surge irrigation system configured to surge irrigate the one or more delineated areas of land.
6. A surge irrigation system comprising:
a valve location unit configured for location above a single flood irrigation valve assembly, the valve location unit having
an elongate linkage with a rod configured to rotatably open and close the single flood irrigation valve assembly, the elongate linkage partially located within a plurality of support members;
a powered actuator connected to the linkage; and
a control unit connected to the powered actuator, the control unit configured to wirelessly receive instructions to operate the powered actuator; and
a power supply connected to the powered actuator and control unit, the power supply comprising a solar panel and a battery;
one or more computers with a processor and memory with one or more modules to operate the control unit, wherein the one or more modules to operate the control unit comprise:
a power management module for managing power in the surge irrigation system;
an instruction and data module for receiving instructions and sending data; and
an operation module for operating the surge irrigation system within predetermined modes, including timing and duration of surge irrigation within one or more delineated areas of land; and
the surge irrigation system configured to surge irrigate the one or more delineated areas of land.
11. A surge irrigation system comprising:
a plurality of valve location units, each valve location unit configured for location above a single valve assembly and having
an elongate linkage configured to open and close the single valve assembly;
a powered actuator connected to the linkage and configured to rotatably open and close the single valve assembly; and
a control unit connected to the powered actuator, the control unit configured to wirelessly receive instructions to operate the powered actuator;
a power supply connected to the powered actuator and control unit, the power supply comprising a solar panel and a battery;
one or more computers with a processor and memory with one or more modules to operate the control unit, wherein the one or more modules to operate the control unit comprise:
a power management module for managing power in the surge irrigation system;
an instruction and data module for receiving instructions and sending data; and
an operation module for operating the surge irrigation system within predetermined modes, including timing and duration of surge irrigation within one or more delineated areas of land; and
a surge irrigation mode wherein a user selects time and duration parameters for surge irrigating the one or more delineated areas of land in series;
a plurality of moisture sensors configured to transmit moisture information as feedback within the surge irrigation system; and
one or more base stations in communication with the control units and configured to relay one or more of surge irrigation data and surge irrigation instructions between control units, a cloud, and a user;
the surge irrigation system configured to surge irrigate the one or more delineated areas of land.
2. The surge irrigation system of
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7. The surge irrigation system of
8. The surge irrigation system of
9. The surge irrigation system of
10. The surge irrigation system of
12. The surge irrigation system of
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This application claims priority to provisional patent application No. 63/247,786, filed on Sep. 23, 2022, and incorporated herein.
Surge irrigation is relatively new with research and development into its practice and modelling started in early 1980s. Surge irrigation is a variant of flood irrigation where the water supply is pulsed on and off in planned time periods (e.g. on for 1 hour off for 1½ hour). The wetting and drying cycles reduce infiltration rates resulting in faster advance rates and higher uniformity than continuous flow. The reduction in infiltration is a result of surface consolidation, filling of cracks and micro pores and the disintegration of soil particles during rapid wetting and consequent surface sealing during each drying phase.
Numerous studies and papers document the advantages of surge over other forms of irrigation (and particularly flood)—including significantly increased water conservation and crop yield. More particularly, specific advantages include: (1) less deep percolation at the upper end of a field and more uniform percolation throughout the field; (2) reduction of tailwater; (3) lighter application of water with higher efficiency; (4) increased opportunity to store precipitation and reduce irrigation requirements; (5) reduction of water pumped and energy requirements for the same; and (6) increased opportunity for automation and less intensive irrigation labor. Such benefits are multiplied in arid and semi-desert environments where water scarcity represents a multi-faceted resource limitation.
Despite the obvious advantages of surge irrigation, there are significant limitations preventing its widespread adoption. For example, conversion of existing irrigation systems to those capable of surge irrigation is often daunting, expensive, and complicated. Because surge irrigation requires regularly pulsing water over varied irrigation areas, automation or semi-automation is needed to manage labor requirements. There are few aftermarket solutions that allow for relatively easy conversion and ease of operation. The stakes are particularly high given water scarcity and climate change trends. What is needed is a new, cost-effective aftermarket solution that provides ease of conversion and operation to implement surge irrigation methods.
In accordance with the above, a new surge irrigation system and method of use is provided. The surge irrigation system is configured to surge irrigate an area of land. Embodiments include one or more valve location units configured for location above a single flood irrigation valve assembly. Each valve location unit has an elongate linkage with a rod configured to rotatably open and close the single flood irrigation valve assembly with a powered actuator. A control unit is connected to the powered actuator and configured to wirelessly receive instructions to operate the powered actuator. Various embodiments also implement a base station to relay information and/or instructions between valve location units and a user. A user may control the system through, for example, a mobile device interface. Embodiments of the invention may also include moisture sensors configured to provide feedback to the system. A method of using the surge irrigation system is also disclosed.
To further clarify the above and other aspects of the present invention, a more particular description of the invention will be rendered by reference to specific embodiments thereof which are illustrated in the appended drawings. It is appreciated that these drawings depict only typical embodiments of the invention and are therefore not to be considered limiting of its scope. The drawings may not be drawn to scale. The invention will be described and explained with additional specificity and detail through the use of the accompanying drawings in which:
The present invention in its various embodiments, some of which are depicted in the figures herein, is a surge irrigation system and method of use.
Referring now to
Across embodiments, valve location unit 100 has a powered actuator 301 that is connected to the elongate linkage 301. Linkage 103 may include a rod and/or gears 403, 404. The powered actuator 301 is further in communication with manual controls 501, 502 for opening and/or closing a valve assembly and/or an electronic, circuit board, and or computer with processor control unit 302 for operating the actuator 301 and other components of the valve location unit 100.
Any type of valve assembly may be suitable for use within the surge irrigation system and/or valve location unit 100, although the illustrated embodiment shows a Fresno® overflow-type valve. Valve assembly 101 is defined herein as any mechanism or structure that gates the flow of water. However, in preferred embodiments, the valve assembly is specifically of the flood irrigation category. The actuator 301 and/or control unit 302 may be powered through a battery 303 and/or solar system 106. In the illustrated embodiment, actuator 301, control unit 302, battery 303, and/or solar system 106 may be connected to and/or located on the platform 102 with a plurality of legs 204, 205, 206, 207 extending downward to the valve assembly 101.
Referring specifically now to
Referring now to
The control unit 302 of the valve control unit 100 may include a printed circuit board (PCB), computer with processor, and means for wirelessly transmitting data and/or instructions to and from the control unit through any number of devices and/or technologies including the internet and/or one or more mobile devices. In one example, control unit 302 may include long range Bluetooth such as a LoRa node and/or one or more base stations that act as a gateway to the internet and/or mobile devices. In other embodiments, the surge irrigation system may include a base station that is separate from the control unit 302 and/or valve location unite. Many different means of achieving wired and/or wireless transmission of data and/or instructions to and from the control unit may be suitable and known to one skilled in the art.
Referring now to
Referring now to
Referring now to
Referring now to
Clicking a valve group (e.g., 1301) leads to a submenu 1400 specific to a valve group 1301. This submenu 1400 further displays surge irrigation system units 1401, 1402 assigned to the valve group 1301, and provides buttons 1403, 1404 for opening and/or closing the same, as well as various status indicators 1406, 1407 for each surge irrigation system unit. The “Valves” submenu 1102 leads to specific screens (
From a “Fields” submenu 1103, a user may also create and/or access scheduled surge irrigation programs for fields, surge irrigation units, valve groups, and irrigation areas. The illustrated embodiment shows such a program by sub-irrigation areas (e.g. dyke) 1801, 1803, 1805, 1807, 1901, 1903, 1905, and 1907, by sequence and surge time length 1802, 1804, 1806, 1808, 1902, 1904, 1906, 1908. Program submenus also provide buttons for scheduling start times 1809, 1808 and/or manually initiating programs 1810 and 1908.
Referring now to
Referring now to
In preliminary testing, use of the system in the arid West has shown increased alfalfa yields of up to 50% using 50% less water than traditional flood irrigation methods. Significantly, installation and operation of the surge irrigation system described may be done at a fraction of the cost of existing systems, in some cases just 20% of such costs.
So, configured, the invention includes a surge irrigation system and method of use. The problem of achieving a new, cost-effective aftermarket solution that provides ease of conversion and operation to implement surge irrigation methods is solved.
The present invention may be embodied in other specific forms without departing from its spirit or essential characteristics. For example, housing 101 may have first 201 and second 202 subparts. In another example, elongate linkage 105 and/or rod 401 may incorporate a riser wrench 409 and/or other riser and/or valve connection at one end. In yet another example, moisture sensor unit may have a cap with digital display 704 and/or internal control unit with onboard electronics or firmware 703. The described embodiments are to be considered in all respects only as illustrative and not restrictive. The scope of the invention is, therefore, indicated by the appended claims rather than by the foregoing description. All changes which come within the meaning and range of equivalency of the claims are to be embraced within their scope.
Carter, Clayton Reed, Slade, E. Clay, Lakatos, Janos, Thayne, Brett Ray, Merritt, Kellyn Gene, Hale, Koby John, Merrill, Nathan Gibbons
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